Parkinson’s disease (PD) is the second most common neurodegenerative disease, mainly manifested by tremor, rigidity, bradykinesia and postural instability, and often an asymmetry of symptom severity of the left and right sides of the body. The depletion of dopamine of the nigrostriatal pathway is the primary cause of the motor symptoms observed in patients with PD, leading to an imbalance in basal-ganglia prefrontal circuits. In the protocols described here, patients with PD before and after levodopa administration and healthy participants performed self-initiated (SI) and externally triggered (ET) movements with the left and right hand during functional magnetic resonance imaging (fMRI). In the chapters of this thesis, we argue and provide evidence for four main points.
The first portion (chapter 2) provides a literature review on cortico-striatal and cortico-cerebellar circuit disruption in PD. Using neuroimaging techniques, changes in cerebral and cerebellar activity have been observed in patients with PD compared with healthy participants. Although increases in activity in the cerebellum have often been interpreted as compensatory mechanisms, we provide evidence that they are more likely to be related to pathophysiological changes of the disease, and the disruption of the cortico- cerebellar circuit. In general, we argue (1) is that activity in the cerebellum is linked to the pathophysiology of PD.
In the second section (chapter 3) we discuss the effect of levodopa on the patterns of cortical hypo- and hyper-activity in PD, as well as the activity of the putamen in SI and ET movements. Many studies have shown cortical hypo-activity in relation to nigrostriatal dopamine depletion. In contrast, some cognitive studies have also identified increases in cortical activity in patients with PD as compared with healthy control participants. We have previously suggested that cortical hypo- and hyper-activations depend on striatal recruitment. In this thesis, we further show that hyper-activations in the prefrontal cortex are not reestablished with levodopa administration. We suggest (2) that they are rather associated with mesocortical dopamine circuit dysfunction, and perhaps linked with long- term dopaminergic medication administration. Furthermore, we show (3) that levodopa has a non-task specific effect on the motor cortico-striatal loop, but does not affect the cognitive cortico-striatal circuit.
Finally (chapter 4), we show that the effect of levodopa on movements of the left and right hands is not symmetrical. Previous studies have shown that in about 50% of patients, one side of the body is more severely affected, and this asymmetry persists throughout the duration of the disease. Our results suggest (4) that levodopa may have stronger effects on the cerebral hemodynamic patterns related to the movements of the more affected hand than on those of the less affected hand.